1.3.5—Fuel cells
- Syllabus
- First assessment 2025
- Objective
- 1.3.5
- Level
- SL
A fuel cell converts chemical energy from a spontaneous redox reaction directly into electrical energy. Oxidation occurs at the anode and reduction at the cathode.
Deduce each half-equation from the fuel-cell reactants and electrolyte context, balance atoms and charge, then add the half-equations to obtain the overall reaction. Hydrogen and methanol cells require different oxidation half-equations.
For a hydrogen fuel cell, oxidation of H₂ supplies electrons at the anode and O₂ gains electrons at the cathode; the half-equations must match the acidic or alkaline electrolyte before they are added to 2H₂ + O₂ → 2H₂O. Direct electrical conversion does not remove the need to evaluate fuel production and storage.
A fuel cell operates while fuel and oxidant are supplied continuously from outside; a conventional battery stores a finite set of reactants internally. Point-of-use water from a hydrogen cell is not a complete environmental assessment—fuel manufacture, transport, storage and electricity source remain inside a lifecycle comparison.
Worked equations — acidic hydrogen cell: anode HX2(g)2HX+(aq)+2eX−; cathode OX2(g)+4HX+(aq)+4eX−2HX2O(l). Double the anode equation before adding, giving 2HX2+OX22HX2O. Direct-methanol cell: anode CHX3OH(aq)+HX2O(l)COX2(g)+6HX+(aq)+6eX−; cathode 23OX2(g)+6HX+(aq)+6eX−3HX2O(l). Adding and cancelling gives CHX3OH+23OX2COX2+2HX2O. Match each half-equation to the stated electrolyte; proton-exchange-membrane construction details are not assessed.
Representative question
Deduce half-equations for the reactions at the two electrodes and hence the equation for the overall reaction.
Anode (negative electrode):
Cathode (positive electrode):
Overall:
Anode:
CH3OH(aq)+H2O(l)→CO2(aq)+6H+(aq)+6e−
Cathode:
O2(aq)+4H+(aq)+4e−→2H2O(l)
Overall:
2CH3OH(aq)+3O2(g)→2CO2(aq)+4H2O(l)
Retrieve the route: identify complete or incomplete combustion products, compare fuels and biofuels, balance fuel-cell half-equations, calculate ΔS° and ΔG°, then use ΔG, Q and K to reason about spontaneity and equilibrium.
Check products before balancing, evidence before evaluation, oxidation versus reduction, kelvin and unit consistency, the sign of ΔG, and whether Q is below, equal to, or above K.